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arXiv · 2302.13017

Radiative decays of the spin-$2$ partner of $X(3872)$

Abstract

It has been generally expected that the $X(3872)$ has a spin-2 partner, $X_2$, with quantum numbers $J^{PC}=2^{++}$. In the hadronic molecular model, its mass was predicted to be below the $D^*\bar D^*$ threshold, and the new structure reported in the $γψ(2S)$ invariant mass distribution by the Belle Collaboration with mass $M= (4014.3 \pm 4.0 \pm 1.5)$ MeV and decay width $Γ= (4 \pm 11 \pm 6)$ MeV, with a global significance of 2.8 $σ$, is a nice candidate for it. We consider the radiative decay widths for the $X_{2}\to γψ$ with $ψ=J/ψ, ψ(2S)$ treating the $X_2$ as a $D^*\bar{D}^*$ shallow bound state, and estimate the events of $X_2$ in two-photon collisions that can be collected in the $γJ/ψ\toγ\ell^+\ell^-$ ($\ell=e,μ$) final states at Belle. Based on the upper limit for the ratio of decay widths of $X(3872)\to γψ(2S)$ and $X(3872)\to γJ/ψ$ measured by BESIII, we predict the similar ratio $Γ(X_2\to γψ(2S))/Γ(X_2\to γJ/ψ)$ to be smaller than $1.0$. We suggest searching for the $X_2$ signal in the $γJ/ψ$ invariant mass distribution via two-photon fusions. The results will lead to insights into both the $X(3872)$ and the new structure observed by Belle.

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BibTeXRIS

Pan-Pan Shi, Jorgivan M. Dias, Feng-Kun Guo. 2023-06-01. Radiative decays of the spin-$2$ partner of $X(3872)$. https://doi.org/10.1016/j.physletb.2023.137987

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